The Ï^+Ï^- Coulomb interaction study and its use in the data processing
arXiv:2409.12696
Abstract
In this work the Coulomb effects (Coulomb correlations) in pairs produced in p + Ni collisions at 24 GeV/, are studied using experimental pair distributions in , the relative momentum in the pair center of mass system (c.m.s), and its projections (longitudinal component) and (transverse component) relative to the pair direction in the laboratory system (l.s.). The , , and distributions of the {\sl Coulomb pairs} in the c.m.s. have been simulated assuming they are described by the phase space modified by the known point-like Coulomb correlation function , corrected for small effects due to the nonpoint-like pair production and the strong two-pion interaction. The same distributions of {\sl non-Coulomb pairs} have been simulated according to the phase space, but without . It is shown that the number of {\sl Coulomb pairs} in all intervals, including the small (small opening angles in the l.s.) is calculated with the theoretical precision better than 2\%. The comparison of the simulated and experimental numbers of {\sl Coulomb pairs} at small allows us to check and correct the detection efficiency for the pairs with small (0.06 mrad and smaller). It is shown that {\sl Coulomb pairs} can be used as a new physical tool to check and correct the quality of the simulated events. The special property of the {\sl Coulomb pairs} is the possibility of checking and correcting the detection efficiency, especially for the pairs with small opening angles.